Augmentation of Voluntary Locomotor Activity by Transcutaneous Spinal Cord Stimulation in Motor-Incomplete Spinal Cord-Injured Individuals

被引:113
作者
Hofstoetter, Ursula S. [1 ]
Krenn, Matthias [1 ]
Danner, Simon M. [1 ,2 ,6 ]
Hofer, Christian [3 ,4 ]
Kern, Helmut [3 ,5 ]
Mckay, William B. [7 ]
Mayr, Winfried [1 ]
Minassian, Karen [1 ]
机构
[1] Med Univ Vienna, Ctr Med Phys & Biomed Engn, A-1090 Vienna, Austria
[2] Vienna Univ Technol, Inst Anal & Sci Comp, Vienna, Austria
[3] Ludwig Boltzmann Inst Elect Stimulat & Phys Rehab, Vienna, Austria
[4] Otto Bock Healthcare Prod GmbH, Vienna, Austria
[5] Wilhelminenspital Wien, Dept Phys Med & Rehabil, Vienna, Austria
[6] Drexel Univ Med, Dept Neurobiol & Anat, Philadelphia, PA USA
[7] Shepherd Ctr, Crawford Res Inst, Hulse Spinal Cord Injury Lab, Atlanta, GA USA
关键词
Human; Locomotor training; Neuromodulation; Spinal cord injury; Transcutaneous spinal cord stimulation; HUMAN LUMBOSACRAL CORD; EPIDURAL ELECTRICAL-STIMULATION; POSTERIOR STRUCTURES; AFFERENT INPUT; NERVOUS-SYSTEM; LUMBAR CORD; WALKING; HUMANS; POTENTIALS; PLASTICITY;
D O I
10.1111/aor.12615
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The level of sustainable excitability within lumbar spinal cord circuitries is one of the factors determining the functional outcome of locomotor therapy after motor-incomplete spinal cord injury. Here, we present initial data using noninvasive transcutaneous lumbar spinal cord stimulation (tSCS) to modulate this central state of excitability during voluntary treadmill stepping in three motor-incomplete spinal cord-injured individuals. Stimulation was applied at 30Hz with an intensity that generated tingling sensations in the lower limb dermatomes, yet without producing muscle reflex activity. This stimulation changed muscle activation, gait kinematics, and the amount of manual assistance required from the therapists to maintain stepping with some interindividual differences. The effect on motor outputs during treadmill-stepping was essentially augmentative and step-phase dependent despite the invariant tonic stimulation. The most consistent modification was found in the gait kinematics, with the hip flexion during swing increased by 11.3 degrees +/- 5.6 degrees across all subjects. This preliminary work suggests that tSCS provides for a background increase in activation of the lumbar spinal locomotor circuitry that has partially lost its descending drive. Voluntary inputs and step-related feedback build upon the stimulation-induced increased state of excitability in the generation of locomotor activity. Thus, tSCS essentially works as an electrical neuroprosthesis augmenting remaining motor control.
引用
收藏
页码:E176 / E186
页数:11
相关论文
共 41 条
[1]  
[Anonymous], TOP SPINAL CORD INJU
[2]   MAPPING OF SENSORY RESPONSES TO EPIDURAL STIMULATION OF THE INTRASPINAL NEURAL STRUCTURES IN MAN [J].
BAROLAT, G ;
MASSARO, F ;
HE, JP ;
ZEME, S ;
KETCIK, B .
JOURNAL OF NEUROSURGERY, 1993, 78 (02) :233-239
[3]  
BAROLAT G, 1986, APPL NEUROPHYSIOL, V49, P307
[4]   The human spinal cord interprets velocity-dependent afferent input during stepping [J].
Beres-Jones, JA ;
Harkema, SJ .
BRAIN, 2004, 127 :2232-2246
[5]   Recovery from a spinal cord injury: Significance of compensation, neural plasticity, and repair [J].
Curt, Armin ;
Van Hedel, Hubertus J. A. ;
Klaus, Daniel ;
Dietz, Volker .
JOURNAL OF NEUROTRAUMA, 2008, 25 (06) :677-685
[6]   Can the Human Lumbar Posterior Columns Be Stimulated by Transcutaneous Spinal Cord Stimulation? A Modeling Study [J].
Danner, Simon M. ;
Hofstoetter, Ursula S. ;
Ladenbauer, Josef ;
Rattay, Frank ;
Minassian, Karen .
ARTIFICIAL ORGANS, 2011, 35 (03) :257-262
[7]   Locomotor activity in spinal man:: significance of afferent input from joint and load receptors [J].
Dietz, V ;
Müller, R ;
Colombo, G .
BRAIN, 2002, 125 :2626-2634
[8]   Evidence for a spinal central pattern generator in humans [J].
Dimitrijevic, MR ;
Gerasimenko, Y ;
Pinter, MM .
NEURONAL MECHANISMS FOR GENERATING LOCOMOTOR ACTIVITY, 1998, 860 :360-376
[9]  
Gybels J., 1985, UPPER MOTOR NEURON F, P58
[10]   Human lumbosacral spinal cord interprets loading during stepping [J].
Harkema, SJ ;
Hurley, SL ;
Patel, UK ;
Requejo, PS ;
Dobkin, BH ;
Edgerton, VR .
JOURNAL OF NEUROPHYSIOLOGY, 1997, 77 (02) :797-811